压缩感知在宽带认知无线电信号中的应用

Mohammed Nagah, Shimaa H. Mostafa, Mohamed Megahed, Mohamed K. Salama
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引用次数: 0

摘要

压缩感知(CS)是一种基于信号稀疏性的数字信号处理理论,它将信号的采样和压缩封装起来。这样可以降低采样率,从而在不降低系统性能的前提下降低系统的计算复杂度。介绍了压缩感知的理论框架和几个关键技术,并举例说明了压缩感知理论在宽带认知无线电信号中的应用。频谱感知是宽带认知无线电(CR)网络中的一个关键问题,它面临着硬件成本高、复杂性大、采样率高、处理速度快等难题。因此,本文表明压缩感知可以用于宽带认知无线电网络来解决上述频谱感知问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Compressive Sensing (CS) to Wide-Band Cognitive Radio signals
Compressive Sensing (CS) is a digital signal processing developed theory that encloses the signal sampling and compression, based on the sparsity characteristics of signal. This can decrease sampling rate, so reduce computational complexity of the system without degrading the performance of the system. This paper describes the theoretical frame and a few key technical, then illustrates the application of compressed sensing theory to wide-band cognitive radio signals. Spectrum sensing is a critical issue in wide-band Cognitive Radio (CR) networks as it faces hard challenges such as high hardware cost, complexity, sampling rate and processing speed. Thus, this paper shows that Compressive Sensing could be exploited in wide-band Cognitive Radio networks to solve the spectrum sensing problems mentioned above.
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